Defective prolactin signaling impairs pancreatic β-cell development during the perinatal period
Julien Auffret1, Michael Freemark, Nadège Carré
1Inserm U693, Le Kremlin-Bicêtre, France;
Insights
Prolactin receptor signaling is crucial for pancreatic beta-cell development and insulin production. Its absence impairs beta-cell mass expansion and affects acinar development, highlighting its role in perinatal pancreas ontogeny.
Area of Science:
- Endocrinology
- Developmental Biology
- Metabolic Research
Background:
- Prolactin (PRL) and placental lactogens stimulate beta-cell replication and insulin production via the PRL receptor (PRLR).
- The role of PRLR signaling in perinatal beta-cell development and adaptive islet growth remains unclear.
Purpose of the Study:
- To investigate the contribution of PRLR signaling to beta-cell ontogeny and function during perinatal development.
- To elucidate the effects of lactogens on adaptive islet growth and pancreas development.
Main Methods:
- Utilized PRLR(-/-) mouse models to assess beta-cell mass and proliferation.
- Examined mTOR signaling pathways in INS-1 cells stimulated by PRL.
- Analyzed IGF-II levels in PRLR(-/-) mice and Goto-Kakizaki rats.
Main Results:
- PRLR(-/-) newborns showed a 30% reduction in beta-cell mass and decreased proliferation at E18.5.
- PRL stimulated leucine incorporation and S6 kinase phosphorylation, indicating a role for beta-cell mTOR signaling.
- Absence of PRLR signaling led to impaired acinar development and reduced cellular size in endocrine and exocrine compartments.
- Decreased IGF-II levels in PRLR(-/-) mice and type 2 diabetic GK rats were associated with impaired PRL-mediated beta-cell proliferation.
Conclusions:
- PRL signaling is essential for pancreas ontogenesis during the perinatal period.
- PRLR signaling is critical for establishing functional beta-cell reserve.
- IGF-II may act as a molecular link between PRL signaling and perinatal pancreas development.
Abstract:
Prolactin (PRL) and placental lactogens stimulate β-cell replication and insulin production in pancreatic islets and insulinoma cells through binding to the PRL receptor (PRLR). However, the contribution of PRLR signaling to β-cell ontogeny and function in perinatal life and the effects of the lactogens on adaptive islet growth are poorly understood. We provide evidence that expansion of β-cell mass during both embryogenesis and the postnatal period is impaired in the PRLR(-/-) mouse model. PRLR(-/-) newborns display a 30% reduction of β-cell mass, consistent with reduced proliferation index at E18.5. PRL stimulates leucine incorporation and S6 kinase phosphorylation in INS-1 cells, supporting a role for β-cell mTOR signaling in PRL action. Interestingly, a defect in the development of acini is also observed in absence of PRLR signaling, with a sharp decline in cellular size in both endocrine and exocrine compartments. Of note, a decrease in levels of IGF-II, a PRL target, in the Goto-Kakizaki (GK) rat, a spontaneous model of type 2 diabetes, is associated with a lack of PRL-mediated β-cell proliferation in embryonic pancreatic buds. Reduced pancreatic IGF-II expression in both rat and mouse models suggests that this factor may constitute a molecular link between PRL signaling and cell ontogenesis. Together, these results provide evidence that PRL signaling is essential for pancreas ontogenesis during the critical perinatal window responsible for establishing functional β-cell reserve.
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